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Updated: Jul 6, 2026

Diffusion Imaging in the Rat Cervical Spinal Cord
Published on: April 7, 2015
Observation of microscopic diffusion anisotropy in the spinal cord using double-pulsed gradient spin echo MRI
M E Komlosh1, M J Lizak, F Horkay
1Section on Tissue Biophysics and Biomimetics, National Institute of Child Health and Human Development, National Institutes of Health, Bethesda, Maryland 20892-5772, USA. komloshm@yahoo.com
Abstract:
A double-pulsed gradient spin echo (d-PGSE) filtered MRI sequence is proposed to detect microscopic diffusion anisotropy in heterogeneous specimen. The technique was developed, in particular, to characterize local microscopic anisotropy in specimens that are macroscopically isotropic, such as gray matter. In such samples, diffusion tensor MRI (DTI) produces an isotropic or nearly isotropic diffusion tensor despite the fact that the medium may be anisotropic at a microscopic length scale. Using d-PGSE filtered MRI, microscopic anisotropy was observed in a "gray matter" phantom consisting of randomly oriented tubes filled with water, as well as in fixed pig spinal cord, within a range of b-values that can be readily achieved on clinical and small animal MR scanners. These findings suggest a potential use for this new contrast mechanism in clinical studies and biological research applications.
Insights
A new MRI technique, double-pulsed gradient spin echo (d-PGSE), detects microscopic diffusion anisotropy in tissues like gray matter. This method reveals hidden microscopic structures invisible to standard diffusion tensor MRI (DTI).
Area of Science:
- Neuroimaging
- Biophysics
- Magnetic Resonance Imaging
Background:
- Standard diffusion tensor MRI (DTI) often shows isotropic diffusion in macroscopically isotropic tissues like gray matter.
- Microscopic structures within these tissues can exhibit anisotropy not detected by DTI.
- Characterizing microscopic anisotropy is crucial for understanding tissue microstructure.
Purpose of the Study:
- To introduce and validate a double-pulsed gradient spin echo (d-PGSE) filtered MRI sequence.
- To detect microscopic diffusion anisotropy in heterogeneous and macroscopically isotropic specimens.
- To assess the utility of d-PGSE MRI for characterizing gray matter microstructure.
Main Methods:
- Development of a d-PGSE filtered MRI sequence.
- Application of the sequence to a "gray matter" phantom (randomly oriented tubes filled with water).
- Testing the sequence on fixed pig spinal cord samples.
- Utilizing a range of clinically achievable b-values.
Main Results:
- Microscopic anisotropy was successfully observed in the gray matter phantom using d-PGSE MRI.
- The technique also detected microscopic anisotropy in fixed pig spinal cord.
- These observations were made within a practical range of b-values.
Conclusions:
- The d-PGSE filtered MRI sequence is effective for detecting microscopic diffusion anisotropy.
- This technique can reveal microstructural anisotropy in macroscopically isotropic tissues.
- d-PGSE MRI holds potential for clinical studies and biological research.
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